Title :
Alternating Motion of Single-Domain Walls in Uniaxial Magnetic Wire
Author :
JimeÌnez, Alejandro ; VaÌzquez, Manuel
Author_Institution :
Inst. of Mater. Sci. of Madrid, Consejo Super. de Investig. Cientificas, Cantoblanco, Spain
Abstract :
Fe-Si-B microwires with strong uniaxial anisotropy reverse magnetization under homeogeneous driving magnetic field, Hdr, by the nucleation at one end and propagation of a single standard domain wall, DWst, resulting in a giant Barkhausen jump between two stable remanent states with opposite magnetization. Under the additional presence of local field, Hloc, a local reverse domain is nucleated, generating a pair of head-to-head and tail-to-tail injected walls, DWinj, that propagate in opposite directions. We performed designed experiments to control the motion of the DWst and DWinj under the action of both fields. The amplitude and frequency of square-shaped in-phase Hdr and Hloc ac fields are tuned to achieve controlled motion of the DWinj domain wall. By properly selecting the amplitude of Hdr and Hloc ac fields (i.e., double or multiple frequencies), we experimentally confirm the DWinj alternating motion between stable local positions/magnetic states, where Hloc plays the role of a magnetic valve and Hdr is the driving field.
Keywords :
Barkhausen effect; boron alloys; iron alloys; magnetic domain walls; nucleation; remanence; silicon alloys; Fe72.5B15Si12.5; giant Barkhausen jump; head-head injected walls; homeogeneous driving magnetic field; magnetic valve; microwires; nucleation; remanent states; single standard domain wall propagation; single-domain walls; square-shaped in-phase; stable local positions-magnetic states; tail-tail injected walls; uniaxial anisotropy reverse magnetization; uniaxial magnetic wire; Coils; Magnetic domain walls; Magnetic domains; Magnetosphere; Magnetostriction; Perpendicular magnetic anisotropy; Soft magnetic materials; cylindrical magnetic wires; domain wall motion; injecting domain walls; local field;
Journal_Title :
Magnetics Letters, IEEE
DOI :
10.1109/LMAG.2014.2353015